激进的
极化(电化学)
未成对电子
核磁共振
电子
化学
磁共振成像
体内
分子
辐照
临床前影像学
辐射
光化学
材料科学
核成像
核磁共振波谱
电子顺磁共振
细胞代谢
放射化学
丙氨酸
紫外线
成像技术
动态成像
作者
Catriona H. E. Rooney,Justin Y. C. Lau,Esben Søvsø Szocska Hansen,Nichlas Vous Christensen,Duy Dang,Kristoffer Petersson,Iain D. C. Tullis,Borivoj Vojnovic,Sean Smart,William K. Myers,Zoe Richardson,Jarrod Lewis,Brett W. C. Kennedy,Alice M. Bowen,Lotte Bonde Bertelsen,Christoffer Laustsen,Damian J. Tyler,Jack J. Miller
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-11-21
卷期号:11 (47): eadz4334-eadz4334
标识
DOI:10.1126/sciadv.adz4334
摘要
Dissolution dynamic nuclear polarization (dDNP) increases the sensitivity of magnetic resonance experiments by >104-fold, permitting isotopically labeled molecules to be transiently visible in magnetic resonance imaging scans. dDNP mechanistically takes place at ~1 K and requires unpaired electrons and microwaves. These electrons are usually chemical radicals, requiring removal by filtration prior to injection into humans. Alternative sources, such as ultraviolet irradiation, generate lower polarization and require cryogenic transport. We present ultrahigh-dose rate electron irradiation as an alternative for generating nonpersistent radicals in alanine/glycerol mixtures. These are stable for months at room temperature, quench spontaneously upon dissolution, are present in dose-dependent concentrations, and generate comparable nuclear polarization (17%) to trityl radicals used clinically (19%) through a previously unknown mechanism we believe to involve partial ordering and electron-electron interactions. Owing to the large radiation doses required, this process is sterilizing, permits imaging of alanine metabolism in vivo in the rat kidney, and may aid clinically translating dDNP.
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